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Phase Stability of Nanocrystalline Grains of Rare-Earth Oxides (Sm(2)O(3) and Eu(2)O(3)) Confined in Magnesia (MgO) Matrix

Rare-earth (RE) oxides are important in myriad fields, including metallurgy, catalysis, and ceramics. However, the phase diagram of RE oxides in the nanoscale might differ from the phase diagrams for bulk, thus attracting attention nowadays. We suggest that grain size in the nanoscale also determine...

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Autores principales: Barad, Chen, Kimmel, Giora, Hayun, Hagay, Shamir, Dror, Hirshberg, Kachal, Gelbstein, Yaniv
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7254195/
https://www.ncbi.nlm.nih.gov/pubmed/32403413
http://dx.doi.org/10.3390/ma13092201
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author Barad, Chen
Kimmel, Giora
Hayun, Hagay
Shamir, Dror
Hirshberg, Kachal
Gelbstein, Yaniv
author_facet Barad, Chen
Kimmel, Giora
Hayun, Hagay
Shamir, Dror
Hirshberg, Kachal
Gelbstein, Yaniv
author_sort Barad, Chen
collection PubMed
description Rare-earth (RE) oxides are important in myriad fields, including metallurgy, catalysis, and ceramics. However, the phase diagram of RE oxides in the nanoscale might differ from the phase diagrams for bulk, thus attracting attention nowadays. We suggest that grain size in the nanoscale also determines the obtained crystallographic phase along with temperature and pressure. For this purpose, nanoparticles of Sm(2)O(3) and Eu(2)O(3) were mixed in an inert MgO matrix via the sol-gel method. This preparation method allowed better isolation of the oxide particles, thus hindering the grain growth process associated with increasing the temperature. The mixed oxides were compared to pure oxides, which were heat-treated using two methods: gradual heating versus direct heating to the phase transition temperature. The cubic phase in pure oxides was preserved to a higher extent in the gradual heating treatment compared to the direct heating treatment. Additionally, in MgO, even a higher extent of the cubic phase was preserved at higher temperatures compared to the pure oxide, which transformed into the monoclinic phase at the same temperature in accordance with the phase diagram for bulk. This indicates that the cubic phase is the equilibrium phase for nanosized particles and is determined also by size.
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spelling pubmed-72541952020-06-10 Phase Stability of Nanocrystalline Grains of Rare-Earth Oxides (Sm(2)O(3) and Eu(2)O(3)) Confined in Magnesia (MgO) Matrix Barad, Chen Kimmel, Giora Hayun, Hagay Shamir, Dror Hirshberg, Kachal Gelbstein, Yaniv Materials (Basel) Article Rare-earth (RE) oxides are important in myriad fields, including metallurgy, catalysis, and ceramics. However, the phase diagram of RE oxides in the nanoscale might differ from the phase diagrams for bulk, thus attracting attention nowadays. We suggest that grain size in the nanoscale also determines the obtained crystallographic phase along with temperature and pressure. For this purpose, nanoparticles of Sm(2)O(3) and Eu(2)O(3) were mixed in an inert MgO matrix via the sol-gel method. This preparation method allowed better isolation of the oxide particles, thus hindering the grain growth process associated with increasing the temperature. The mixed oxides were compared to pure oxides, which were heat-treated using two methods: gradual heating versus direct heating to the phase transition temperature. The cubic phase in pure oxides was preserved to a higher extent in the gradual heating treatment compared to the direct heating treatment. Additionally, in MgO, even a higher extent of the cubic phase was preserved at higher temperatures compared to the pure oxide, which transformed into the monoclinic phase at the same temperature in accordance with the phase diagram for bulk. This indicates that the cubic phase is the equilibrium phase for nanosized particles and is determined also by size. MDPI 2020-05-11 /pmc/articles/PMC7254195/ /pubmed/32403413 http://dx.doi.org/10.3390/ma13092201 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Barad, Chen
Kimmel, Giora
Hayun, Hagay
Shamir, Dror
Hirshberg, Kachal
Gelbstein, Yaniv
Phase Stability of Nanocrystalline Grains of Rare-Earth Oxides (Sm(2)O(3) and Eu(2)O(3)) Confined in Magnesia (MgO) Matrix
title Phase Stability of Nanocrystalline Grains of Rare-Earth Oxides (Sm(2)O(3) and Eu(2)O(3)) Confined in Magnesia (MgO) Matrix
title_full Phase Stability of Nanocrystalline Grains of Rare-Earth Oxides (Sm(2)O(3) and Eu(2)O(3)) Confined in Magnesia (MgO) Matrix
title_fullStr Phase Stability of Nanocrystalline Grains of Rare-Earth Oxides (Sm(2)O(3) and Eu(2)O(3)) Confined in Magnesia (MgO) Matrix
title_full_unstemmed Phase Stability of Nanocrystalline Grains of Rare-Earth Oxides (Sm(2)O(3) and Eu(2)O(3)) Confined in Magnesia (MgO) Matrix
title_short Phase Stability of Nanocrystalline Grains of Rare-Earth Oxides (Sm(2)O(3) and Eu(2)O(3)) Confined in Magnesia (MgO) Matrix
title_sort phase stability of nanocrystalline grains of rare-earth oxides (sm(2)o(3) and eu(2)o(3)) confined in magnesia (mgo) matrix
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7254195/
https://www.ncbi.nlm.nih.gov/pubmed/32403413
http://dx.doi.org/10.3390/ma13092201
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